Surgical tool systems and method
Embodiments of the invention provide a guided surgical tool assembly with a guide tube including a sensor, a surgical instrument including a detectable feature moveable within the guide tube, and the sensor capable of detecting the detectable feature when the surgical instrument is inserted in the guide tube. Some embodiments include a sensor pad, a guide stop coupled to the surgical instrument, a plunger mechanism including a compressible spring mechanism coupled to the guide tube, and a wiper capable of being sensed by the sensor pad. Some embodiments include a guided surgical tool assembly system comprising a tool sensor system including a processor and at least one data input/output interface. Some embodiments include a medical robot system with a guided surgical tool assembly and including a robot coupled to an effectuator element configured for controlled movement and positioning along one or more of an x-axis, a y-axis, and a z-axis.
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This application claims priority under 35 U.S.C. § 120 to U.S. patent application Ser. No. 13/924,505 filed on Jun. 21, 2013, which claims the priority 35 U.S.C. § 119 to U.S. Provisional Patent Application No. 61/662,702 filed on Jun. 21, 2012 and U.S. Provisional Patent Application No. 61/800,527 filed on Mar. 15, 2013, each of which are incorporated herein by reference in their entirety.
BACKGROUNDVarious medical procedures require the accurate localization of a three-dimensional position of a surgical instrument within the body in order to effect optimized treatment. For example, some surgical procedures to fuse vertebrae require that a surgeon drill multiple holes into the bone structure at specific locations. To achieve high levels of mechanical integrity in the fusing system, and to balance the forces created in the bone structure, it is necessary that the holes are drilled at the correct location. Vertebrae, like most bone structures, have complex shapes including non-planar curved surfaces making accurate and perpendicular drilling difficult. Conventionally, a surgeon manually holds and positions a drill guide tube by using a guidance system to overlay the drill tube's position onto a three dimensional image of the bone structure. This manual process is both tedious and time consuming. The success of the surgery is largely dependent upon the dexterity of the surgeon who performs it.
Limited robotic assistance for surgical procedures is currently available. For example, the da Vinci® medical robot system (da Vinci® is a registered trademark of Intuitive Surgical) is a robot used in certain surgical applications. In the da Vinci® system, the user controls manipulators that control a robotic actuator. The system converts the surgeon's gross movements into micro-movements of the robotic actuator. Although the da Vinci® system eliminates hand tremor and provides the user with the ability to work through a small opening, like many of the robots commercially available today, it is expensive, obtrusive, and the setup is cumbersome. Further, for procedures such as thoracolumbar pedicle screw insertion, these conventional methods are known to be error-prone and tedious.
One of the characteristics of many of the current robots used in surgical applications which make them error prone is that autonomous movement and precise placement of a surgical instrument can be hindered by lack of mechanical feedback and/or loss of visual placement once the instrument is submerged within a portion of a patient.
SUMMARYSome embodiments of the invention provide a guided surgical tool assembly comprising a guide tube including at least one sensor and a surgical instrument including at least one detectable feature moveable within the guide tube. In some embodiments, the at least one sensor is configured and arranged to detect the at least one detectable feature when the surgical instrument is at least partially inserted in the guide tube.
Some embodiments include a detectable feature comprising a magnetically detectable feature capable of generating a magnetic flux field, and in some embodiments, the sensor is a position sensor capable of detecting the magnetic flux field. Some embodiments also include a position sensor configured and arranged to detect insertion into and movement of the surgical instrument in the guide tube by sensing the magnetically detectable feature. In some embodiments, the position sensor is a magnetic flux field sensor selected from a group consisting of a ferrite-based magnetic material, a rare-earth based magnetic material, an aluminum-nickel-cobalt based magnetic material, and mixtures thereof.
In some embodiments, the detectable feature includes at least one longitudinal magnetic strip and at least one radial magnetic strip. Further, in some embodiments, the guide tube includes at least three position sensors, and in some embodiments, the at least three position sensors are configured and arranged to sense a magnetic field flux from the longitudinal magnetic strip or the radial magnetic field strip or both.
In some embodiments, the longitudinal position of the surgical instrument in the guide tube can be at least partially determined using a measurement of a magnetic field flux from the longitudinal magnetic strip. In other embodiments, a radial position of the surgical instrument in the guide tube can be at least partially determined using a measurement of a magnetic field flux from the radial magnetic strip.
Some embodiments include a detectable feature comprising an optically detectable feature, and at least one sensor comprising at least one optical sensor. In some embodiments, the optically detectable feature comprises a contrasting or high contrast marking distributed along at least a partial longitudinal length of the guided surgical tool assembly.
Some embodiments include at least one optical sensor comprising a light sensitive detector selected from a group consisting of a photodiode, a phototransistor, a fiber-optic sensor, a photo-multiplier, a CCD, a camera, or a combination thereof.
In some embodiments, the longitudinal position of the surgical instrument in the guide tube can be at least partially determined by optically sensing light from the high contrast marking using the at least one optical sensor.
Some embodiments include an optically detectable feature comprising a graduated coating distributed along at least a partial longitudinal length of the guided surgical tool assembly. In some embodiments, the graduated coating comprises a graduated reflective coating. In other embodiments, the graduated coating comprises a graduated color coating.
In some embodiments, the longitudinal position of the surgical instrument in the guide tube can be at least partially determined by optically sensing light from the graduated coating using the at least one optical sensor.
Some embodiments include a guided surgical tool assembly wherein the guide tube comprises a distal guide tube end and a proximal guide tube end, and the surgical instrument includes a distal end and a proximal end. In some embodiments, the sensor comprises at least one sensor pad. The guided surgical tool assembly can further comprise a guide stop coupled to the proximal end of the surgical instrument, and a plunger mechanism. The plunger mechanism can include a compressible spring mechanism coupled to the distal end of the guide tube and a wiper configured and arranged to be sensed by the at least one sensor pad.
In some embodiments of the guided surgical tool assembly, longitudinal movement of the surgical instrument within the guide tube (where the guide stop moves toward the proximal end of the guide tube) can at least partially compress the spring and move the wiper with respect to the at least one sensor pad. In other embodiments, longitudinal movement of the surgical instrument within the guide tube where the guide stop moves away from the proximal end of the guide tube can at least partially decompress the spring and move the wiper with respect to the at least one sensor pad.
Some embodiments include a guided surgical tool assembly system comprising a tool sensor system including at least one processor and at least one data input/output interface. In some embodiments, the data input interface including at least one sensor, a guide tube including the at least one sensor, and a surgical instrument moveable within the guide tube. In some embodiments, the surgical instrument includes at least one detectable feature, and the at least one sensor is configured and arranged to detect the at least one detectable feature.
In some embodiments, the guided surgical tool assembly system includes a guide tube comprising a distal guide tube end and a proximal guide tube end, and the surgical instrument includes a distal end and a proximal end. In some embodiments, the sensor comprises at least one sensor pad, and the guided surgical tool assembly further comprises a guide stop coupled to the proximal end of the surgical instrument, the plunger mechanism can include a compressible spring mechanism coupled to the distal end of the guide tube and a wiper configured and arranged to be sensed by the at least one sensor pad. The at least one processor can be configured and arranged to detect the at least one surgical instrument when the instrument at least partially inserted or moved in the guide tube.
In some embodiments of the guided surgical tool assembly system, the detectable feature comprises a magnetically detectable feature capable of generating a magnetic flux field. The sensor can be a position sensor capable of detecting the magnetic flux field, and be configured and arranged to detect insertion into and movement of the surgical instrument in the guide tube by sensing the magnetically detectable feature.
Some embodiments include a guided surgical tool assembly system in which the detectable feature comprises an optically detectable feature, and the at least one sensor comprises at least one optical sensor. The optically detectable feature can comprise a contrasting or high contrast marking distributed along at least a partial longitudinal length of the guided surgical tool assembly. In some embodiments, the detectable feature comprises an optically detectable feature, and the at least one sensor comprises at least one optical sensor. The optically detectable feature can comprise a graduated coating distributed along at least a partial longitudinal length of the guided surgical tool assembly.
Some embodiments include a medical robot system comprising a robot coupled to an effectuator element configured for controlled movement and positioning, and a motor assembly coupled to the robot. The motor assembly can be configured to move the effectuator element along one or more of an x-axis, a y-axis, and a z-axis such that movement of the effectuator element along one of the x-, y-, or z-axes occurs independently of movement of the effectuator element along the other axes of the x-, y-, and z-axes, wherein the x-axis is substantially perpendicular to the y- and z-axes, the y-axis is substantially perpendicular to the x- and z-axes, and the z-axis is substantially perpendicular to the x- and y axes.
In some embodiments, the medical robot system also comprises a tool sensor system including at least one processor and at least one data input/output interface, the data input interface including at least one sensor, and a guide tube including the at least one sensor. In some embodiments, the surgical instrument is moveable within the guide tube, and the surgical instrument includes at least one detectable feature. Further, in some embodiments, the at least one sensor is configured and arranged to detect the at least one detectable feature, and the at least one processor is configured and arranged to detect when the surgical instrument is at least partially inserted in the guide tube. In some embodiments, the detectable feature can include one or more of instrument length, type, torque ranges, depth of treatment parameters and other instrument parameters. Some embodiments include a tracking marker coupled to the surgical instrument.
Before any embodiments of the invention are explained in detail, it is to be understood that the invention is not limited in its application to the details of construction and the arrangement of components set forth in the following description or illustrated in the following drawings. The invention is capable of other embodiments and of being practiced or of being carried out in various ways. Also, it is to be understood that the phraseology and terminology used herein is for the purpose of description and should not be regarded as limiting. The use of “including,” “comprising,” or “having” and variations thereof herein is meant to encompass the items listed thereafter and equivalents thereof as well as additional items. Unless specified or limited otherwise, the terms “mounted,” “connected,” “supported,” and “coupled” and variations thereof are used broadly and encompass both direct and indirect mountings, connections, supports, and couplings. Further, “connected” and “coupled” are not restricted to physical or mechanical connections or couplings.
The following discussion is presented to enable a person skilled in the art to make and use embodiments of the invention. Various modifications to the illustrated embodiments will be readily apparent to those skilled in the art, and the generic principles herein can be applied to other embodiments and applications without departing from embodiments of the invention. Thus, embodiments of the invention are not intended to be limited to embodiments shown, but are to be accorded the widest scope consistent with the principles and features disclosed herein. The following detailed description is to be read with reference to the figures, in which like elements in different figures have like reference numerals. The figures, which are not necessarily to scale, depict selected embodiments and are not intended to limit the scope of embodiments of the invention. Skilled artisans will recognize the examples provided herein have many useful alternatives and fall within the scope of embodiments of the invention.
In some further embodiments, the end-effectuator 30 can be configured for selective rotation about one or more of the x-axis 66, y-axis 68, and z-axis 70 (such that one or more of the Cardanic Euler Angles (e.g., roll, pitch, and/or yaw) associated with the end-effectuator 30 can be selectively controlled). In some embodiments, during operation, the end-effectuator 30 and/or surgical instrument 35 can be aligned with a selected orientation axis (labeled “Z Tube” in
In some embodiments, selective control of the translation and orientation of the end-effectuator 30 can permit performance of medical procedures with significantly improved accuracy compared to conventional robots that utilize, for example, a six degree of freedom robot arm 23 comprising only rotational axes. For example, in some embodiments, as shown in
In some embodiments, the position of surgical instrument 35 can be dynamically updated so that surgical robot 15 can be aware of the location of surgical instrument 35 at all times during the procedure. Consequently, in some embodiments, the surgical robot 15 can move the surgical instrument 35 to the desired position quickly, with minimal damage to patient 18, and without any further assistance from a physician (unless the physician so desires). In some further embodiments, the surgical robot 15 can be configured to correct the path of surgical instrument 35 if the surgical instrument 35 strays from the selected, preplanned trajectory. In some embodiments, the surgical robot 15 can be configured to permit stoppage, modification, and/or manual control of the movement of the end-effectuator 30 and/or surgical instrument 35. Thus, in use, in some embodiments, a physician or other user can operate the system 1, and has the option to stop, modify, or manually control the autonomous movement of end-effectuator 30 and/or surgical instrument 35. Further details of the surgical robot system 1 including the control and movement of a surgical instrument 35 by the surgical robot 15 can be found in co-pending U.S. patent application Ser. No. 13/924,505 from which this application claims priority under 35 U.S.C. § 120, and which is incorporated herein by reference in its entirety.
In some embodiments, a guide tube 50 is used with a surgical instrument 35 to operate on a patient 18. For example, some embodiments include a guide tube 50 comprising a distal end 50a and a proximal end 50b. As used herein, “tube” is used to refer to somewhat hollow structures of any one or more desired cross-sectional shapes. In some embodiments, when the surgical instrument 35 is advanced into the tissue of the patient 18 with the assistance of a guide tube 50, the surgical instrument 35 can comprise a guide stop 52 that is configured to prevent the surgical instrument 35 from advancing when it reaches a predetermined amount of protrusion. For example,
In some embodiments, it can be desirable to monitor not just the maximum protrusion distance of the surgical instrument 35, but also the actual protrusion distance periodically or at any instant during the insertion process. Therefore, in some embodiments, the robot 15 can periodically or substantially continuously monitor the protrusion distance, and in some embodiments, the distance can be displayed (e.g., such as on display 29). In some embodiments, protrusion distance can be substantially continuously monitored using a spring-loaded plunger 54 including a compressible spring-loaded mechanism 55a and sensor pad 55b that has a coupled wiper 56 (see for example
In some embodiments, the tool assembly system 1000 (shown in
In some embodiments, the surgical robot system 1 may be coupled to the tool assembly system 1000. In some other embodiments, the surgical robot system 1 may comprise the tool assembly system 1000. In some embodiments, the data input/output interface 1100 may be coupled directed to the display 29 (e.g., to directly display from one or more sensors), and in other embodiments, the data input/output interface 1100 may be coupled to the surgical robot system 1 or the display 29, or both. In some embodiments, the data input/output interface 1100 may include a conventional low voltage circuit coupled to one or more sensors 55b, 56, 310, and 510. In other embodiments, the data input/output interface 1100 may be coupled to a conventional low voltage circuit coupled to one or more sensors 55b, 56, 310, and 510. In some embodiments, the one or more sensors 55b, 56, 310, and 510 may be powered by the data input/output interface through a conventional low voltage circuit. In some other embodiments, the one or more sensors 55b, 56, 310, and 510 may be powered through a conventional low voltage circuit and coupled to the data input/output interface.
In some embodiments, the at least one processor 1010 can receive data from at least one data input/output interface 1100. As depicted in
In some embodiments, as the wiper 56 moves across the sensor pad 55b toward the lower end of the wiped region 58, the tool assembly system 1000 can communicate the position of the wiper 56 and/or movement of the wiper 56 with respect to the sensor pad 55b. As described earlier, in some other embodiments, the surgical robot system 1 may comprise the tool assembly system 1000, and the data input/output interface 1100 may be coupled to the surgical robot system 1 to enable the surgical robot system 1 to read the wiper 56 position on the sensor pad 55b, or movement of the wiper 56 with respect to the sensor pad 55b.
In some embodiments, the surgical instrument can comprise a drill bit 42. Some embodiments include instruments 35 that enable the stop on a drill bit 42 to be manually adjusted with reference to markings 44 on the drill bit 42. For example,
Some embodiments include the ability to lock and hold the drill bit 42 in a set position relative to the guide tube 50 in which it is housed. For example, in some embodiments, the drill bit 42 can be locked by locking the drill stop 46 relative to the guide tube 50 using a locking mechanism.
In some embodiments, the tool assembly system 1000 can include the data input/output interface 1100 with at least one position sensor 310. In some embodiments, the at least one processor 1010 can send and receive data from at least the network interface 1040 and the application interface 1050 and may receive data from the data input/output interface 1100 with at least one position sensor 310.
In some other embodiments, the magnetic strip 320 may extend closer to or farther away from the distal end 35a of the surgical instrument 35. As shown, in some embodiments, the magnetic strip 320 is positioned on the outer surface of the surgical instrument 35. However, in some other embodiments, the magnetic strip 320 can be positioned below the outer surface of the instrument 35 (i.e., the magnetic strip 320 may be embedded in the instrument 35). In some embodiments, the magnetic strip 320 comprises a thickness that is sufficient to retain adequate mechanical integrity. For example, in some embodiments, the magnetic strip 320 comprises a thickness that is sufficient to retain adequate durability during use, while having with enough magnetic field flux to be detected by the position sensor 310.
In some embodiments, the magnetic strip 320 can comprise a thin, flexible, rigid or semi-rigid magnetic material with a thickness of between about 0.001 and about 0.15 inches. In some embodiments, the magnetic strip 320 may be thinner than 0.001 inches, and in other embodiments, the magnetic strip 320 may be thicker than 0.15 inches. In some embodiments, the magnetic strip 320 comprises a self-supporting tape or similar material that can be cut to size and adhered to the surgical instrument 35. In other embodiments, the magnetic strip 320 is formed on the surgical instrument 35 from a liquid or semi-liquid (e.g., magnetic paint that is applied to the surface of the instrument 35 in defined locations which then dries to form the magnetic strip 320). In some embodiments, the magnetic strip 320 comprises a ferrite-based magnetic material. In other embodiments, the magnetic strip 320 comprises a rare-earth based magnetic material (e.g., a neodymium-based permanent magnet). In some further embodiments, the magnetic strip 320 comprises an alnico-based magnetic material (i.e., an aluminum-nickel-cobalt based magnetic material). For example, in some embodiments, the magnetic strip 320 can comprise a thin, flexible, rigid or semi-rigid magnetic strip 320 that comprises a material selected from a group consisting of ferrite-based magnetic material, a neodymium-based permanent magnet, an alnico-based magnetic material, and mixtures thereof. Alternatively, in some other embodiments, the magnetic strip 320 is formed on the surgical instrument 35 from a liquid or semi-liquid (e.g., magnetic paint) that comprises a material selected from a group consisting of ferrite-based magnetic material, a neodymium-based permanent magnet, an alnico-based magnetic material, and mixtures thereof. In some embodiments, the magnetic strip 320 can be embedded within the interior structure of the instrument 35. For example, it may be positioned in the core of the instrument 35. In other embodiments, if the instrument 35 is tubular, the magnetic strip 320 can be placed on the inside surface of the tubular orifice.
In some embodiments, the tool assembly 300 can include the position sensor 310 coupled to the guide tube 51a (see
In some embodiments, magnetic strip 320 can comprise alternative arrangements of regions of higher and lower magnetic field flux strength capable of being detected by the position sensor 310 as it moves with respect to the magnetic strip 320. In some other embodiments, the alternative arrangements of regions of higher and lower magnetic field flux strength can comprise a magnetic bar code capable of being detected by the magnetic strip 320 and processes using the at least one processor 1010 through the data input/output interface 1100. In some embodiments, the arrangements of regions of higher and lower magnetic field flux strength can comprise a magnetic bar code (depicted as the magnetically coded region 321 of the magnetic strip 320 shown in
Some embodiments can include additional or alternative position sensors 310. For example,
In some other embodiments, the tool assembly 400 (shown in
In addition to magnetic field based sensing, some embodiments include optical sensing of the movement of a surgical instrument 35 in a guide tube. For example,
In some embodiments, the modified guide tube 51c can include at least one optical sensor 510 capable of sensing at least one of the plurality of high contrast marking 520. In some embodiments, as the surgical instrument 35 is inserted in the guide tube 51c, the at least one optical sensor 510 can be capable of sensing at least one of the plurality of high contrast marking 520. Further, in some embodiments, the tool assembly system 1000 can include the data input/output interface 1100 coupled with at least one of plurality of high contrast marking 520. The at least one processor 1010 can send and receive data from at least the network interface 1040 and the application interface 1050 and may receive data from the data input/output interface 1100 with at least one of the plurality of high contrast marking 520, through an interaction with the at least one optical sensor 510. Therefore, in some embodiments, the surgical robot system 1 can detect at least the movement of the surgical instrument 35 longitudinally with respect the guide tube 51c as the optical sensor 510 detects at least one of the plurality of high contrast markings 520.
In some embodiments, the optical sensor 510 can be a photodiode, a phototransistor, a fiber-optic sensor, a photo-multiplier, a CCD, a camera or a combination of those described. In some embodiments, the optical sensor 510 can detect ambient light reflected from the surgical instrument 35 including the plurality of high contrast marking 520. In other embodiments, a conventional light source (e.g., an incandescent bulb or an LED light) can be used in combination with the optical sensor 510 and high contrast marking 520, and the optical sensor 510 can detect light emitted by the light source, reflected from the surgical instrument 35 including the plurality of high contrast markings 520.
Some embodiments can include an alternative optical recognition of a surgical instrument 35. For example,
In some embodiments, the robotic surgical system 1 can comprise a plurality of tracking markers 720 configured to track the movement of the robot arm 23, the end-effectuator 30, and/or the surgical instrument 35 in three dimensions. It should be appreciated that three dimensional positional information from tracking markers 720 can be used in conjunction with the one dimensional linear positional information from absolute or relative conventional linear encoders on each axis of the robot 15 to maintain a high degree of accuracy. In some embodiments, the plurality of tracking markers 720 can be mounted (or otherwise secured) thereon an outer surface of the robot 15, such as, for example and without limitation, on the base 25 of the robot 15, or the robot arm 23 (see for example
In certain embodiments, because of the high accuracy in calculating the orientation and position of the end-effectuator 30 based on the tracking marker 720 outputs and/or encoder counts from each axis, it can be possible to very accurately determine the position of the end-effectuator 30. For example, in some embodiments, without requiring knowledge of the counts of axis encoders for the z-axis 70 (which is between the x-axis 66 and the base 25), knowing only the position of the markers 720 on the x-axis 66 and the counts of encoders on the y axis 68, roll axis 62, pitch 60, and Z-tube axes 64 can enable computation of the position of the end-effectuator 30. In some embodiments, the placement of markers 720 on any intermediate axis of the robot 15 can permit the exact position of the end-effectuator 30 to be calculated based on location of such markers 720 and counts of encoders on axes (66, 62, 60, 64) between the markers 720 and the end-effectuator 30. Further details of the surgical robot system 1 including the control, movement and tracking of the surgical robot 15 and of a surgical instrument 35 can be found in co-pending U.S. patent application Ser. No. 13/924,505 from which this application claims priority under 35 U.S.C. § 120, and which is incorporated herein by reference in its entirety as earlier recited.
Some embodiments include one or more markers 725 coupled to the surgical instrument 35. In some embodiments, the markers 720, 725 can comprise conventional light-emitting diodes or an Optotrak® diode or reflective Polaris sphere capable of being tracked using a commercially available infrared optical tracking system such as Optotrak®. Optotrak® is a registered trademark of Northern Digital Inc., Waterloo, Ontario, Canada. In some embodiments, light emitted from and/or reflected by the markers 720, 725 can be read by cameras 8200 used to monitor the location and movement of the robot 15 (see for example the camera 8200 mounted on the camera arm 8210 and capable of movement through camera arm joint 8210a and camera arm joint 8210b shown in
Although several embodiments of the invention have been disclosed in the foregoing specification, it is understood that many modifications and other embodiments of the invention will come to mind to which the invention pertains, having the benefit of the teaching presented in the foregoing description and associated drawings. It is thus understood that the invention is not limited to the specific embodiments disclosed hereinabove, and that many modifications and other embodiments are intended to be included within the scope of the appended claims. Moreover, although specific terms are employed herein, as well as in the claims which follow, they are used only in a generic and descriptive sense, and not for the purposes of limiting the described invention, nor the claims which follow.
It will be appreciated by those skilled in the art that while the invention has been described above in connection with particular embodiments and examples, the invention is not necessarily so limited, and that numerous other embodiments, examples, uses, modifications and departures from the embodiments, examples and uses are intended to be encompassed by the claims attached hereto. The entire disclosure of each patent and publication cited herein is incorporated by reference, as if each such patent or publication were individually incorporated by reference herein. Various features and advantages of the invention are set forth in the following claims.
Claims
1. A surgical robot system comprising:
- a display;
- a housing;
- an arm; and
- a guided surgical tool assembly coupled to the arm, the guided surgical tool assembly comprising: a rigid guide tube disposed in the guided surgical tool assembly, wherein the rigid guide tube is a single hollow structure including at least one sensor disposed inside the single hollow structure, wherein the rigid guide tube is configured to removably receive one of a plurality of surgical instruments associated with spinal surgery; a surgical instrument configured to be received within the single hollow structure containing the at least one sensor, the surgical instrument including at least one detectable feature extending longitudinally along the surgical instrument; and wherein the at least one sensor is configured and arranged to couple with the at least one detectable feature when the surgical instrument is inside the single hollow structure to determine a position of the surgical instrument within the guide tube, wherein the surgical robot system is configured to calibrate a targeting fixture to a medical image received by the surgical robot system in order track movement of the surgical instrument, receive data indicative of an intended trajectory associated with the medical image, and move the arm and guide surgical tool in accordance with the intended trajectory wherein the detectable feature includes at least one longitudinal magnetic strip and at least one radial magnetic strip, wherein the at least one longitudinal magnetic strip extends the entire length of the guide tube and the radial magnetic strip is positioned proximal to a first opening and extending the entire circumference of the guide tube.
2. The surgical robot system of claim 1, wherein the detectable feature comprises a magnetically detectable feature for generating a magnetic flux field; and wherein the sensor is a position sensor for detecting the magnetic flux field.
3. The surgical robot system of claim 1, wherein the position sensor is a magnetic flux field sensor selected from a group consisting of a ferrite-based magnetic material, a rare-earth based magnetic material, an aluminum-nickel-cobalt based magnetic material, and mixtures thereof.
4. The surgical robot system of claim 2, wherein the position sensor is configured and arranged to detect insertion into and movement of the surgical instrument in the guide tube by sensing the magnetically detectable feature.
5. The surgical robot system of claim 1, wherein the guide tube includes at least two position sensors.
6. The surgical robot system of claim 5, wherein the at least two position sensors are configured and arranged to sense a magnetic field flux from the longitudinal magnetic strip or the radial magnetic field strip or both.
7. The surgical robot system of claim 6, wherein a longitudinal position of the surgical instrument in the guide tube can be at least partially determined using a measurement of a magnetic field flux from the longitudinal magnetic strip.
8. The surgical robot system of claim 6, wherein a radial position of the surgical instrument in the guide tube can be at least partially determined using a measurement of a magnetic field flux from the radial magnetic strip.
9. The surgical robot system assembly of claim 1, wherein the detectable feature comprises an optically detectable feature; and wherein the at least one sensor comprises at least one optical sensor.
10. The surgical robot system assembly of claim 9, wherein the optically detectable feature comprises a high contrast marking distributed along at least a partial longitudinal length of the guided surgical tool assembly.
11. The surgical robot system of claim 10, wherein the at least one optical sensor comprises a light sensitive detector selected from a group consisting of a photodiode, a phototransistor, a fiber-optic sensor, a photo-multiplier, a CCD, a camera, or a combination thereof.
12. The surgical robot system of claim 10, wherein a longitudinal position of the surgical instrument in the guide tube can be at least partially determined by optically sensing light from the high contrast marking using the at least one optical sensor.
13. The surgical robot system of claim 9, wherein the optically detectable feature comprises a graduated coating distributed along at least a length of the guided surgical tool assembly.
14. The surgical robot system of claim 13, wherein the graduated coating comprises a graduated reflective coating.
15. The surgical robot system of claim 13, wherein the graduated coating comprises a graduated color coating.
16. The surgical robot system of claim 13, wherein a longitudinal position of the surgical instrument in the guide tube can be at least partially determined by optically sensing light from the graduated coating using the at least one optical sensor.
17. The surgical robot system of claim 1, wherein the guide tube comprises a distal guide tube end and a proximal guide tube end; and the surgical instrument includes a distal end and a proximal end; and wherein the sensor comprises at least one sensor pad; and wherein the guided surgical tool assembly further comprises: a guide stop coupled to the proximal end of the surgical instrument; and a plunger mechanism including a compressible spring mechanism coupled to the distal end of the guide tube and a wiper configured and arranged to be sensed by the at least one sensor pad.
18. The surgical robot system of claim 17, wherein longitudinal movement of the surgical instrument within the guide tube where the guide stop moves toward the proximal end of the guide tube can at least partially compress the spring and move the wiper with respect to the at least one sensor pad.
19. The surgical robot system of claim 17, wherein longitudinal movement of the surgical instrument within the guide tube where the guide stop moves away from the proximal end of the guide tube can at least partially decompress the spring and move the wiper with respect to the at least one sensor pad.
20. A surgical robot system comprising:
- a surgical robot having a display, a housing, and an arm;
- a guide surgical tool assembly coupled to the arm of the surgical robot, the guide surgical tool assembly comprising: a tool sensor system including at least one processor and at least one data input/output interface, the data input interface including at least one sensor; a rigid guide tube disposed in the guide surgical tool assembly, wherein the rigid guide tube is a single hollow structure and the at least one sensor is disposed inside the single hollow structure, wherein the rigid guide tube is configured to removably receive one of a plurality of surgical instruments associated with spinal surgery; and a surgical instrument configured to be received within the single hollow structure containing the at least one sensor and moveable within the guide tube, the surgical instrument including at least one detectable feature extending longitudinally along the surgical instrument; wherein the at least one sensor is configured and arranged to couple with the at least one detectable feature when the surgical instrument is inside the single hollow structure to determine a position of the surgical instrument within the guide tube, wherein the surgical robot system is configured to calibrate a targeting fixture to a medical image received by the surgical robot system in order to track movement of the surgical instrument relative to the medical image, receive data indicative of an intended trajectory associated with the medical image, and move the arm and guide surgical tool in accordance with the intended trajectory wherein the detectable feature includes at least one longitudinal magnetic strip and at least one radial magnetic strip, wherein the at least one longitudinal magnetic strip extends the entire length of the guide tube and the radial magnetic strip is positioned proximal to a first opening and extending the entire circumference of the guide tube.
21. A surgical robot system of claim 20, wherein the guide tube comprises a distal guide tube end and a proximal guide tube end; and the surgical instrument includes a distal end and a proximal end; and wherein the sensor comprises at least one sensor pad; and wherein the guided surgical tool assembly further comprises: a guide stop coupled to the proximal end of the surgical instrument; and a plunger mechanism including a compressible spring mechanism coupled to the distal end of the guide tube and a wiper configured and arranged to be sensed by the at least one sensor pad; and wherein the at least one processor is configured and arranged to detect the at least one surgical instrument when at least partially inserted or moved in the guide tube.
22. The surgical robot system of claim 20, wherein the detectable feature comprises a magnetically detectable feature configured to generate a magnetic flux field; and wherein the sensor is a position sensor for detecting the magnetic flux field; and wherein the position sensor is configured and arranged to detect insertion into and movement of the surgical instrument in the guide tube by sensing the magnetically detectable feature.
23. The surgical robot system of claim 20, wherein the detectable feature comprises an optically detectable feature; and wherein the at least one sensor comprises at least one optical sensor; and wherein the optically detectable feature comprises a high contrast marking distributed along length of the guided surgical tool assembly.
24. The surgical robot system of claim 20, wherein the detectable feature comprises an optically detectable feature; and wherein the at least one sensor comprises at least one optical sensor; and wherein the optically detectable feature comprises a graduated coating distributed along a length of the guided surgical tool assembly.
25. A surgical robot system of claim 20, wherein the surgical instrument includes at least one tracking sensor.
26. A medical robot system, comprising:
- a robot comprising a display, a housing, and an arm, the robot configured for controlled movement and positioning;
- an effectuator element coupled to the arm;
- a motor assembly coupled to the robot, the motor assembly being configured to move the effectuator element along one or more of an x-axis, a y-axis, and a z-axis such that movement of the effectuator element along one of the x-, y-, or z-axes occurs independently of movement of the effectuator element along the other axes of the x-, y-, and z-axes, wherein the x-axis is perpendicular to the y- and z-axes, the y-axis is perpendicular to the x- and z-axes, and the z-axis is perpendicular to the x- and y axes;
- a tool sensor system including at least one processor and at least one data input/output interface, the data input interface including at least one sensor;
- a guide tube disposed in the effectuator element, wherein the guide tube is a single hollow structure including the at least one sensor disposed inside the single hollow structure, wherein the guide tube is configured to removably receive one of a plurality of surgical instruments associated with spinal surgery; and
- a surgical instrument configured to be received within the single hollow structure containing the at least one sensor and moveable within the guide tube, the surgical instrument including at least one detectable feature extending longitudinally along the surgical instrument;
- wherein the at least one sensor is configured and arranged to couple with the at least one detectable feature when the surgical instrument is inside the single hollow structure to determine a position of the surgical instrument within the guide tube; and wherein the at least one processor is configured and arranged to detect when the surgical instrument is inside the single hollow structure,
- wherein the guide tube is rigid and the surgical instrument includes a guide stop that contacts a proximal end of the rigid guide tube to prevent the surgical instrument from extending further,
- wherein the surgical robot system is configured to calibrate a targeting fixture to a medical image received by the surgical robot system in order to track movement of the surgical instrument relative to the medical image, receive data indicative of an intended trajectory associated with the medical image, and move the arm and guide surgical tool in accordance with the intended trajectory
- wherein the detectable feature includes at least one longitudinal magnetic strip and at least one radial magnetic strip, wherein the at least one longitudinal magnetic strip extends the entire length of the guide tube and the radial magnetic strip is positioned proximal to a first opening and extending the entire circumference of the guide tube.
27. A medical robot system of claim 26, wherein the surgical instrument includes at least one tracking sensor.
4150293 | April 17, 1979 | Franke |
5246010 | September 21, 1993 | Gazzara et al. |
5354314 | October 11, 1994 | Hardy et al. |
5397323 | March 14, 1995 | Taylor et al. |
5492527 | February 20, 1996 | Glowa |
5598453 | January 28, 1997 | Baba et al. |
5603318 | February 18, 1997 | Heilbrun |
5772594 | June 30, 1998 | Barrick |
5791908 | August 11, 1998 | Gillio |
5820559 | October 13, 1998 | Ng et al. |
5825982 | October 20, 1998 | Wright et al. |
5887121 | March 23, 1999 | Funda et al. |
5911449 | June 15, 1999 | Daniele et al. |
5951475 | September 14, 1999 | Gueziec et al. |
5987960 | November 23, 1999 | Messner et al. |
6012216 | January 11, 2000 | Esteves et al. |
6031888 | February 29, 2000 | Ivan et al. |
6033415 | March 7, 2000 | Mittelstadt et al. |
6080181 | June 27, 2000 | Jensen et al. |
6106511 | August 22, 2000 | Jensen |
6122541 | September 19, 2000 | Cosman et al. |
6144875 | November 7, 2000 | Schweikard et al. |
6157853 | December 5, 2000 | Blume et al. |
6167145 | December 26, 2000 | Foley et al. |
6167292 | December 26, 2000 | Badano et al. |
6201984 | March 13, 2001 | Funda et al. |
6203196 | March 20, 2001 | Meyer et al. |
6205411 | March 20, 2001 | DiGioia, III et al. |
6212419 | April 3, 2001 | Blume et al. |
6231565 | May 15, 2001 | Tovey et al. |
6236875 | May 22, 2001 | Bucholz et al. |
6246900 | June 12, 2001 | Cosman et al. |
6276471 | August 21, 2001 | Kratzenberg et al. |
6301495 | October 9, 2001 | Gueziec et al. |
6306126 | October 23, 2001 | Montezuma |
6312435 | November 6, 2001 | Wallace et al. |
6314311 | November 6, 2001 | Williams et al. |
6320929 | November 20, 2001 | Von Der Haar |
6322567 | November 27, 2001 | Mittelstadt et al. |
6325808 | December 4, 2001 | Bernard et al. |
6340363 | January 22, 2002 | Bolger et al. |
6377011 | April 23, 2002 | Ben-Ur |
6379302 | April 30, 2002 | Kessman et al. |
6402762 | June 11, 2002 | Hunter et al. |
6424885 | July 23, 2002 | Niemeyer et al. |
6447503 | September 10, 2002 | Wynne et al. |
6451027 | September 17, 2002 | Cooper et al. |
6477400 | November 5, 2002 | Barrick |
6484049 | November 19, 2002 | Seeley et al. |
6487267 | November 26, 2002 | Wolter |
6490467 | December 3, 2002 | Bucholz et al. |
6490475 | December 3, 2002 | Seeley et al. |
6499488 | December 31, 2002 | Hunter et al. |
6501981 | December 31, 2002 | Schweikard et al. |
6507751 | January 14, 2003 | Blume et al. |
6535756 | March 18, 2003 | Simon et al. |
6560354 | May 6, 2003 | Maurer, Jr. et al. |
6565554 | May 20, 2003 | Niemeyer |
6587750 | July 1, 2003 | Gerbi et al. |
6614453 | September 2, 2003 | Suri et al. |
6614871 | September 2, 2003 | Kobiki et al. |
6619840 | September 16, 2003 | Rasche et al. |
6636757 | October 21, 2003 | Jascob et al. |
6645196 | November 11, 2003 | Nixon et al. |
6666579 | December 23, 2003 | Jensen |
6669635 | December 30, 2003 | Kessman et al. |
6701173 | March 2, 2004 | Nowinski et al. |
6757068 | June 29, 2004 | Foxlin |
6782287 | August 24, 2004 | Grzeszczuk et al. |
6783524 | August 31, 2004 | Anderson et al. |
6786896 | September 7, 2004 | Madhani et al. |
6788018 | September 7, 2004 | Blumenkranz |
6804581 | October 12, 2004 | Wang et al. |
6823207 | November 23, 2004 | Jensen et al. |
6827351 | December 7, 2004 | Graziani et al. |
6837892 | January 4, 2005 | Shoham |
6839612 | January 4, 2005 | Sanchez et al. |
6856826 | February 15, 2005 | Seeley et al. |
6856827 | February 15, 2005 | Seeley et al. |
6879880 | April 12, 2005 | Nowlin et al. |
6892090 | May 10, 2005 | Verard et al. |
6920347 | July 19, 2005 | Simon et al. |
6922632 | July 26, 2005 | Foxlin |
6968224 | November 22, 2005 | Kessman et al. |
6978166 | December 20, 2005 | Foley et al. |
6988009 | January 17, 2006 | Grimm et al. |
6991627 | January 31, 2006 | Madhani et al. |
6996487 | February 7, 2006 | Jutras et al. |
6999852 | February 14, 2006 | Green |
7007699 | March 7, 2006 | Martinelli et al. |
7016457 | March 21, 2006 | Senzig et al. |
7043961 | May 16, 2006 | Pandey et al. |
7062006 | June 13, 2006 | Pelc et al. |
7063705 | June 20, 2006 | Young et al. |
7072707 | July 4, 2006 | Galloway, Jr. et al. |
7083615 | August 1, 2006 | Peterson et al. |
7097640 | August 29, 2006 | Wang et al. |
7099428 | August 29, 2006 | Clinthorne et al. |
7108421 | September 19, 2006 | Gregerson et al. |
7130676 | October 31, 2006 | Barrick |
7139418 | November 21, 2006 | Abovitz et al. |
7139601 | November 21, 2006 | Bucholz et al. |
7155316 | December 26, 2006 | Sutherland et al. |
7164968 | January 16, 2007 | Treat et al. |
7167738 | January 23, 2007 | Schweikard et al. |
7169141 | January 30, 2007 | Brock et al. |
7172627 | February 6, 2007 | Fiere et al. |
7194120 | March 20, 2007 | Wicker et al. |
7197107 | March 27, 2007 | Arai et al. |
7231014 | June 12, 2007 | Levy |
7231063 | June 12, 2007 | Naimark et al. |
7239940 | July 3, 2007 | Wang et al. |
7248914 | July 24, 2007 | Hastings et al. |
7301648 | November 27, 2007 | Foxlin |
7302288 | November 27, 2007 | Schellenberg |
7313430 | December 25, 2007 | Urquhart et al. |
7318805 | January 15, 2008 | Schweikard et al. |
7318827 | January 15, 2008 | Leitner et al. |
7319897 | January 15, 2008 | Leitner et al. |
7324623 | January 29, 2008 | Heuscher et al. |
7327865 | February 5, 2008 | Fu et al. |
7331967 | February 19, 2008 | Lee et al. |
7333642 | February 19, 2008 | Green |
7339341 | March 4, 2008 | Oleynikov et al. |
7366562 | April 29, 2008 | Dukesherer et al. |
7379790 | May 27, 2008 | Toth et al. |
7386365 | June 10, 2008 | Nixon |
7422592 | September 9, 2008 | Morley et al. |
7435216 | October 14, 2008 | Kwon et al. |
7440793 | October 21, 2008 | Chauhan et al. |
7460637 | December 2, 2008 | Clinthorne et al. |
7466303 | December 16, 2008 | Yi et al. |
7493153 | February 17, 2009 | Ahmed et al. |
7505617 | March 17, 2009 | Fu et al. |
7533892 | May 19, 2009 | Schena et al. |
7542791 | June 2, 2009 | Mire et al. |
7555331 | June 30, 2009 | Viswanathan |
7567834 | July 28, 2009 | Clayton et al. |
7594912 | September 29, 2009 | Cooper et al. |
7606613 | October 20, 2009 | Simon et al. |
7607440 | October 27, 2009 | Coste-Maniere et al. |
7623902 | November 24, 2009 | Pacheco |
7630752 | December 8, 2009 | Viswanathan |
7630753 | December 8, 2009 | Simon et al. |
7643862 | January 5, 2010 | Schoenefeld |
7660623 | February 9, 2010 | Hunter et al. |
7661881 | February 16, 2010 | Gregerson et al. |
7683331 | March 23, 2010 | Chang |
7683332 | March 23, 2010 | Chang |
7689320 | March 30, 2010 | Prisco et al. |
7691098 | April 6, 2010 | Wallace et al. |
7702379 | April 20, 2010 | Avinash et al. |
7702477 | April 20, 2010 | Tuemmler et al. |
7711083 | May 4, 2010 | Heigl et al. |
7711406 | May 4, 2010 | Kuhn et al. |
7720523 | May 18, 2010 | Omernick et al. |
7725253 | May 25, 2010 | Foxlin |
7726171 | June 1, 2010 | Langlotz et al. |
7742801 | June 22, 2010 | Neubauer et al. |
7751865 | July 6, 2010 | Jascob et al. |
7760849 | July 20, 2010 | Zhang |
7762825 | July 27, 2010 | Burbank et al. |
7763015 | July 27, 2010 | Cooper et al. |
7787699 | August 31, 2010 | Mahesh et al. |
7796728 | September 14, 2010 | Bergfjord |
7813838 | October 12, 2010 | Sommer |
7818044 | October 19, 2010 | Dukesherer et al. |
7819859 | October 26, 2010 | Prisco et al. |
7824401 | November 2, 2010 | Manzo et al. |
7831294 | November 9, 2010 | Viswanathan |
7834484 | November 16, 2010 | Sartor |
7835557 | November 16, 2010 | Kendrick et al. |
7835778 | November 16, 2010 | Foley et al. |
7835784 | November 16, 2010 | Mire et al. |
7840253 | November 23, 2010 | Tremblay et al. |
7840256 | November 23, 2010 | Lakin et al. |
7843158 | November 30, 2010 | Prisco |
7844320 | November 30, 2010 | Shahidi |
7853305 | December 14, 2010 | Simon et al. |
7853313 | December 14, 2010 | Thompson |
7865269 | January 4, 2011 | Prisco et al. |
D631966 | February 1, 2011 | Perloff et al. |
7879045 | February 1, 2011 | Gielen et al. |
7881767 | February 1, 2011 | Strommer et al. |
7881770 | February 1, 2011 | Melkent et al. |
7886743 | February 15, 2011 | Cooper et al. |
RE42194 | March 1, 2011 | Foley et al. |
RE42226 | March 15, 2011 | Foley et al. |
7900524 | March 8, 2011 | Calloway et al. |
7907166 | March 15, 2011 | Lamprecht et al. |
7909122 | March 22, 2011 | Schena et al. |
7925653 | April 12, 2011 | Saptharishi |
7930065 | April 19, 2011 | Larkin et al. |
7935130 | May 3, 2011 | Willliams |
7940999 | May 10, 2011 | Liao et al. |
7945012 | May 17, 2011 | Ye et al. |
7945021 | May 17, 2011 | Shapiro et al. |
7953470 | May 31, 2011 | Vetter et al. |
7954397 | June 7, 2011 | Choi et al. |
7971341 | July 5, 2011 | Dukesherer et al. |
7974674 | July 5, 2011 | Hauck et al. |
7974677 | July 5, 2011 | Mire et al. |
7974681 | July 5, 2011 | Wallace et al. |
7979157 | July 12, 2011 | Anvari |
7983733 | July 19, 2011 | Viswanathan |
7988215 | August 2, 2011 | Seibold |
7996110 | August 9, 2011 | Lipow et al. |
8004121 | August 23, 2011 | Sartor |
8004229 | August 23, 2011 | Nowlin et al. |
8010177 | August 30, 2011 | Csavoy et al. |
8019045 | September 13, 2011 | Kato |
8021310 | September 20, 2011 | Sanborn et al. |
8035685 | October 11, 2011 | Jensen |
8046054 | October 25, 2011 | Kim et al. |
8046057 | October 25, 2011 | Clarke |
8052688 | November 8, 2011 | Wolf, II |
8054184 | November 8, 2011 | Cline et al. |
8054752 | November 8, 2011 | Druke et al. |
8057397 | November 15, 2011 | Li et al. |
8057407 | November 15, 2011 | Martinelli et al. |
8062288 | November 22, 2011 | Cooper et al. |
8062375 | November 22, 2011 | Glerum et al. |
8066524 | November 29, 2011 | Burbank et al. |
8073335 | December 6, 2011 | Labonville et al. |
8079950 | December 20, 2011 | Stern et al. |
8086299 | December 27, 2011 | Adler et al. |
8092370 | January 10, 2012 | Roberts et al. |
8098914 | January 17, 2012 | Liao et al. |
8100950 | January 24, 2012 | St. Clair et al. |
8105320 | January 31, 2012 | Manzo |
8108025 | January 31, 2012 | Csavoy et al. |
8109877 | February 7, 2012 | Moctezuma de la Barrera et al. |
8112292 | February 7, 2012 | Simon |
8116430 | February 14, 2012 | Shapiro et al. |
8120301 | February 21, 2012 | Goldberg et al. |
8121249 | February 21, 2012 | Wang et al. |
8123675 | February 28, 2012 | Funda et al. |
8133229 | March 13, 2012 | Bonutti |
8142420 | March 27, 2012 | Schena |
8147494 | April 3, 2012 | Leitner et al. |
8150494 | April 3, 2012 | Simon et al. |
8150497 | April 3, 2012 | Gielen et al. |
8150498 | April 3, 2012 | Gielen et al. |
8165658 | April 24, 2012 | Waynik et al. |
8170313 | May 1, 2012 | Kendrick et al. |
8179073 | May 15, 2012 | Farritor et al. |
8182476 | May 22, 2012 | Julian et al. |
8184880 | May 22, 2012 | Zhao et al. |
8202278 | June 19, 2012 | Orban, III et al. |
8208708 | June 26, 2012 | Homan et al. |
8208988 | June 26, 2012 | Jensen |
8219177 | July 10, 2012 | Smith et al. |
8219178 | July 10, 2012 | Smith et al. |
8220468 | July 17, 2012 | Cooper et al. |
8224024 | July 17, 2012 | Foxlin et al. |
8224484 | July 17, 2012 | Swarup et al. |
8225798 | July 24, 2012 | Baldwin et al. |
8228368 | July 24, 2012 | Zhao et al. |
8231610 | July 31, 2012 | Jo et al. |
8263933 | September 11, 2012 | Hartmann et al. |
8239001 | August 7, 2012 | Verard et al. |
8241271 | August 14, 2012 | Millman et al. |
8248413 | August 21, 2012 | Gattani et al. |
8256319 | September 4, 2012 | Cooper et al. |
8271069 | September 18, 2012 | Jascob et al. |
8271130 | September 18, 2012 | Hourtash |
8281670 | October 9, 2012 | Larkin et al. |
8282653 | October 9, 2012 | Nelson et al. |
8301226 | October 30, 2012 | Csavoy et al. |
8311611 | November 13, 2012 | Csavoy et al. |
8320991 | November 27, 2012 | Jascob et al. |
8332012 | December 11, 2012 | Kienzle, III |
8333755 | December 18, 2012 | Cooper et al. |
8335552 | December 18, 2012 | Stiles |
8335557 | December 18, 2012 | Maschke |
8348931 | January 8, 2013 | Cooper et al. |
8353963 | January 15, 2013 | Glerum |
8358818 | January 22, 2013 | Miga et al. |
8359730 | January 29, 2013 | Burg et al. |
8374673 | February 12, 2013 | Adcox et al. |
8374723 | February 12, 2013 | Zhao et al. |
8379791 | February 19, 2013 | Forthmann et al. |
8386019 | February 26, 2013 | Camus et al. |
8392022 | March 5, 2013 | Ortmaier et al. |
8394099 | March 12, 2013 | Patwardhan |
8395342 | March 12, 2013 | Prisco |
8398634 | March 19, 2013 | Manzo et al. |
8400094 | March 19, 2013 | Schena |
8414957 | April 9, 2013 | Enzerink et al. |
8418073 | April 9, 2013 | Mohr et al. |
8450694 | May 28, 2013 | Baviera et al. |
8452447 | May 28, 2013 | Nixon |
RE44305 | June 18, 2013 | Foley et al. |
8462911 | June 11, 2013 | Vesel et al. |
8465476 | June 18, 2013 | Rogers et al. |
8465771 | June 18, 2013 | Wan et al. |
8467851 | June 18, 2013 | Mire et al. |
8467852 | June 18, 2013 | Csavoy et al. |
8469947 | June 25, 2013 | Devengenzo et al. |
RE44392 | July 23, 2013 | Hynes |
8483434 | July 9, 2013 | Buehner et al. |
8483800 | July 9, 2013 | Jensen et al. |
8486532 | July 16, 2013 | Enzerink et al. |
8489235 | July 16, 2013 | Moll et al. |
8500722 | August 6, 2013 | Cooper |
8500728 | August 6, 2013 | Newton et al. |
8504201 | August 6, 2013 | Moll et al. |
8506555 | August 13, 2013 | Ruiz Morales |
8506556 | August 13, 2013 | Schena |
8508173 | August 13, 2013 | Goldberg et al. |
8512318 | August 20, 2013 | Tovey et al. |
8515576 | August 20, 2013 | Lipow et al. |
8518120 | August 27, 2013 | Glerum et al. |
8521331 | August 27, 2013 | Itkowitz |
8526688 | September 3, 2013 | Groszmann et al. |
8526700 | September 3, 2013 | Isaacs |
8527094 | September 3, 2013 | Kumar et al. |
8528440 | September 10, 2013 | Morley et al. |
8532741 | September 10, 2013 | Heruth et al. |
8541970 | September 24, 2013 | Nowlin et al. |
8548563 | October 1, 2013 | Simon et al. |
8549732 | October 8, 2013 | Burg et al. |
8551114 | October 8, 2013 | Ramos de la Pena |
8551116 | October 8, 2013 | Julian et al. |
8556807 | October 15, 2013 | Scott et al. |
8556979 | October 15, 2013 | Glerum et al. |
8560118 | October 15, 2013 | Green et al. |
8561473 | October 22, 2013 | Blumenkranz |
8562594 | October 22, 2013 | Cooper et al. |
8571638 | October 29, 2013 | Shoham |
8571710 | October 29, 2013 | Coste-Maniere et al. |
8573465 | November 5, 2013 | Shelton, IV |
8574303 | November 5, 2013 | Sharkey et al. |
8585420 | November 19, 2013 | Burbank et al. |
8594841 | November 26, 2013 | Zhao et al. |
8597198 | December 3, 2013 | Sanborn et al. |
8600478 | December 3, 2013 | Verard et al. |
8603077 | December 10, 2013 | Cooper et al. |
8611985 | December 17, 2013 | Lavallee et al. |
8613230 | December 24, 2013 | Blumenkranz et al. |
8621939 | January 7, 2014 | Blumenkranz et al. |
8624537 | January 7, 2014 | Nowlin et al. |
8630389 | January 14, 2014 | Kato |
8634897 | January 21, 2014 | Simon et al. |
8634957 | January 21, 2014 | Toth et al. |
8638056 | January 28, 2014 | Goldberg et al. |
8638057 | January 28, 2014 | Goldberg et al. |
8639000 | January 28, 2014 | Zhao et al. |
8641726 | February 4, 2014 | Bonutti |
8644907 | February 4, 2014 | Hartmann et al. |
8657809 | February 25, 2014 | Schoepp |
8660635 | February 25, 2014 | Simon et al. |
8666544 | March 4, 2014 | Moll et al. |
8675939 | March 18, 2014 | Moctezuma de la Barrera |
8678647 | March 25, 2014 | Gregerson et al. |
8679125 | March 25, 2014 | Smith et al. |
8679183 | March 25, 2014 | Glerum et al. |
8682413 | March 25, 2014 | Lloyd |
8684253 | April 1, 2014 | Giordano et al. |
8685098 | April 1, 2014 | Glerum et al. |
8693730 | April 8, 2014 | Umasuthan et al. |
8694075 | April 8, 2014 | Groszmann et al. |
8696458 | April 15, 2014 | Foxlin et al. |
8700123 | April 15, 2014 | Okamura et al. |
8706086 | April 22, 2014 | Glerum |
8706185 | April 22, 2014 | Foley et al. |
8706301 | April 22, 2014 | Zhao et al. |
8717430 | May 6, 2014 | Simon et al. |
8727618 | May 20, 2014 | Maschke et al. |
8734432 | May 27, 2014 | Tuma et al. |
8738115 | May 27, 2014 | Amberg et al. |
8738181 | May 27, 2014 | Greer et al. |
8740882 | June 3, 2014 | Jun et al. |
8746252 | June 10, 2014 | McGrogan et al. |
8749189 | June 10, 2014 | Nowlin et al. |
8749190 | June 10, 2014 | Nowlin et al. |
8761930 | June 24, 2014 | Nixon |
8764448 | July 1, 2014 | Yang et al. |
8771170 | July 8, 2014 | Mesallum et al. |
8781186 | July 15, 2014 | Clements et al. |
8781630 | July 15, 2014 | Banks et al. |
8784385 | July 22, 2014 | Boyden et al. |
8786241 | July 22, 2014 | Nowlin et al. |
8787520 | July 22, 2014 | Baba |
8792704 | July 29, 2014 | Isaacs |
8798231 | August 5, 2014 | Notohara et al. |
8800838 | August 12, 2014 | Shelton, IV |
8808164 | August 19, 2014 | Hoffman et al. |
8812077 | August 19, 2014 | Dempsey |
8814793 | August 26, 2014 | Brabrand |
8816628 | August 26, 2014 | Nowlin et al. |
8818105 | August 26, 2014 | Myronenko et al. |
8820605 | September 2, 2014 | Shelton, IV |
8821511 | September 2, 2014 | Von Jako et al. |
8823308 | September 2, 2014 | Nowlin et al. |
8827996 | September 9, 2014 | Scott et al. |
8828024 | September 9, 2014 | Farritor et al. |
8830224 | September 9, 2014 | Zhao et al. |
8834489 | September 16, 2014 | Cooper et al. |
8834490 | September 16, 2014 | Bonutti |
8838270 | September 16, 2014 | Druke et al. |
8844789 | September 30, 2014 | Shelton, IV et al. |
8855822 | October 7, 2014 | Bartol et al. |
8858598 | October 14, 2014 | Seifert et al. |
8860753 | October 14, 2014 | Bhandarkar et al. |
8864751 | October 21, 2014 | Prisco et al. |
8864798 | October 21, 2014 | Weiman et al. |
8864833 | October 21, 2014 | Glerum et al. |
8867703 | October 21, 2014 | Shapiro et al. |
8870880 | October 28, 2014 | Himmelberger et al. |
8876866 | November 4, 2014 | Zappacosta et al. |
8880223 | November 4, 2014 | Raj et al. |
8882803 | November 11, 2014 | Iott et al. |
8883210 | November 11, 2014 | Truncale et al. |
8888821 | November 18, 2014 | Rezach et al. |
8888853 | November 18, 2014 | Glerum et al. |
8888854 | November 18, 2014 | Glerum et al. |
8894652 | November 25, 2014 | Seifert et al. |
8894688 | November 25, 2014 | Suh |
8894691 | November 25, 2014 | Iott et al. |
8906069 | December 9, 2014 | Hansell et al. |
8964934 | February 24, 2015 | Ein-Gal |
8992580 | March 31, 2015 | Bar et al. |
8996169 | March 31, 2015 | Lightcap et al. |
9001963 | April 7, 2015 | Sowards-Emmerd et al. |
9002076 | April 7, 2015 | Khadem et al. |
9044190 | June 2, 2015 | Rubner et al. |
9107683 | August 18, 2015 | Hourtash et al. |
9125556 | September 8, 2015 | Zehavi et al. |
9131986 | September 15, 2015 | Greer et al. |
9215968 | December 22, 2015 | Schostek et al. |
9308050 | April 12, 2016 | Kostrzewski et al. |
9380984 | July 5, 2016 | Li et al. |
9393039 | July 19, 2016 | Lechner et al. |
9398886 | July 26, 2016 | Gregerson et al. |
9398890 | July 26, 2016 | Dong et al. |
9414859 | August 16, 2016 | Ballard et al. |
9420975 | August 23, 2016 | Gutfleisch et al. |
9492235 | November 15, 2016 | Hourtash et al. |
9592096 | March 14, 2017 | Maillet et al. |
9750465 | September 5, 2017 | Engel et al. |
9757203 | September 12, 2017 | Hourtash et al. |
9795354 | October 24, 2017 | Menegaz et al. |
9814535 | November 14, 2017 | Bar et al. |
9820783 | November 21, 2017 | Donner et al. |
9833265 | December 5, 2017 | Donner et al. |
9848922 | December 26, 2017 | Tohmeh et al. |
9925011 | March 27, 2018 | Gombert et al. |
9931025 | April 3, 2018 | Graetzel et al. |
10034717 | July 31, 2018 | Miller et al. |
20010036302 | November 1, 2001 | Miller |
20020035321 | March 21, 2002 | Bucholz et al. |
20020065481 | May 30, 2002 | Cory |
20020167309 | November 14, 2002 | Chaparala |
20030055049 | March 20, 2003 | Brock |
20040068172 | April 8, 2004 | Nowinski et al. |
20040076259 | April 22, 2004 | Jensen et al. |
20040152972 | August 5, 2004 | Hunter |
20050096502 | May 5, 2005 | Khalili |
20050143651 | June 30, 2005 | Verard et al. |
20050171558 | August 4, 2005 | Abovitz et al. |
20060100610 | May 11, 2006 | Wallace et al. |
20060142657 | June 29, 2006 | Quaid |
20060173329 | August 3, 2006 | Marquart et al. |
20060184396 | August 17, 2006 | Dennis et al. |
20060241416 | October 26, 2006 | Marquart et al. |
20060291612 | December 28, 2006 | Nishide et al. |
20070015987 | January 18, 2007 | Benlloch Baviera et al. |
20070021738 | January 25, 2007 | Hasser et al. |
20070038059 | February 15, 2007 | Sheffer et al. |
20070073133 | March 29, 2007 | Schoenefeld |
20070078473 | April 5, 2007 | Bodduluri |
20070156121 | July 5, 2007 | Millman et al. |
20070156123 | July 5, 2007 | Moll |
20070156157 | July 5, 2007 | Nahum et al. |
20070167712 | July 19, 2007 | Keglovich et al. |
20070197939 | August 23, 2007 | Wallace |
20070233238 | October 4, 2007 | Huynh et al. |
20080004523 | January 3, 2008 | Jensen |
20080013809 | January 17, 2008 | Zhu et al. |
20080027586 | January 31, 2008 | Hem |
20080033283 | February 7, 2008 | Dellaca et al. |
20080046122 | February 21, 2008 | Manzo et al. |
20080082109 | April 3, 2008 | Moll et al. |
20080108912 | May 8, 2008 | Node-Langlois |
20080108991 | May 8, 2008 | Von Jako |
20080109012 | May 8, 2008 | Falco et al. |
20080144906 | June 19, 2008 | Allred et al. |
20080161680 | July 3, 2008 | Von Jako et al. |
20080161682 | July 3, 2008 | Kendrick et al. |
20080177203 | July 24, 2008 | von Jako |
20080214922 | September 4, 2008 | Hartmann et al. |
20080215181 | September 4, 2008 | Smith |
20080228068 | September 18, 2008 | Viswanathan et al. |
20080228196 | September 18, 2008 | Wang et al. |
20080235052 | September 25, 2008 | Node-Langlois et al. |
20080269596 | October 30, 2008 | Revie et al. |
20080287771 | November 20, 2008 | Anderson |
20080287781 | November 20, 2008 | Revie et al. |
20080294096 | November 27, 2008 | Uber, III |
20080300477 | December 4, 2008 | Lloyd et al. |
20080300478 | December 4, 2008 | Zuhars et al. |
20080302950 | December 11, 2008 | Park et al. |
20080306490 | December 11, 2008 | Lakin et al. |
20080319311 | December 25, 2008 | Hamadeh |
20090012509 | January 8, 2009 | Csavoy et al. |
20090024142 | January 22, 2009 | Ruiz Morales |
20090030428 | January 29, 2009 | Omori et al. |
20090080737 | March 26, 2009 | Battle et al. |
20090185655 | July 23, 2009 | Koken et al. |
20090198121 | August 6, 2009 | Hoheisel |
20090216113 | August 27, 2009 | Meier et al. |
20090228019 | September 10, 2009 | Gross et al. |
20090259123 | October 15, 2009 | Navab et al. |
20090259230 | October 15, 2009 | Khadem et al. |
20090264899 | October 22, 2009 | Appenrodt et al. |
20090281417 | November 12, 2009 | Hartmann et al. |
20100022874 | January 28, 2010 | Wang et al. |
20100039506 | February 18, 2010 | Sarvestani et al. |
20100114115 | May 6, 2010 | Schlesinger |
20100125284 | May 20, 2010 | Tanner |
20100125286 | May 20, 2010 | Wang et al. |
20100130986 | May 27, 2010 | Mailloux et al. |
20100228117 | September 9, 2010 | Hartmann |
20100228265 | September 9, 2010 | Prisco |
20100249571 | September 30, 2010 | Jensen et al. |
20100274120 | October 28, 2010 | Heuscher |
20100280363 | November 4, 2010 | Skarda et al. |
20100331858 | December 30, 2010 | Simaan et al. |
20110022229 | January 27, 2011 | Jang et al. |
20110077504 | March 31, 2011 | Fischer et al. |
20110098553 | April 28, 2011 | Robbins et al. |
20110118542 | May 19, 2011 | Cucin |
20110137152 | June 9, 2011 | Li |
20110213384 | September 1, 2011 | Jeong |
20110224684 | September 15, 2011 | Larkin et al. |
20110224685 | September 15, 2011 | Larkin et al. |
20110224686 | September 15, 2011 | Larkin et al. |
20110224687 | September 15, 2011 | Larkin et al. |
20110224688 | September 15, 2011 | Larkin et al. |
20110224689 | September 15, 2011 | Larkin et al. |
20110224825 | September 15, 2011 | Larkin et al. |
20110230967 | September 22, 2011 | O'Halloran et al. |
20110238080 | September 29, 2011 | Ranjit et al. |
20110276058 | November 10, 2011 | Choi et al. |
20110282189 | November 17, 2011 | Graumann |
20110286573 | November 24, 2011 | Schretter et al. |
20110295062 | December 1, 2011 | Gratacos Solsona et al. |
20110295240 | December 1, 2011 | Hamel |
20110295370 | December 1, 2011 | Suh et al. |
20110306986 | December 15, 2011 | Lee et al. |
20120035507 | February 9, 2012 | George et al. |
20120046668 | February 23, 2012 | Gantes |
20120051498 | March 1, 2012 | Koishi |
20120053597 | March 1, 2012 | Anvari et al. |
20120059248 | March 8, 2012 | Holsing et al. |
20120071753 | March 22, 2012 | Hunter et al. |
20120108954 | May 3, 2012 | Schulhauser et al. |
20120136372 | May 31, 2012 | Amat Girbau et al. |
20120143084 | June 7, 2012 | Shoham |
20120184839 | July 19, 2012 | Woerlein |
20120197182 | August 2, 2012 | Millman et al. |
20120226145 | September 6, 2012 | Chang et al. |
20120235909 | September 20, 2012 | Birkenbach et al. |
20120245596 | September 27, 2012 | Meenink |
20120253332 | October 4, 2012 | Moll |
20120253360 | October 4, 2012 | White et al. |
20120256092 | October 11, 2012 | Zingerman |
20120294498 | November 22, 2012 | Popovic |
20120296203 | November 22, 2012 | Hartmann et al. |
20130006267 | January 3, 2013 | Odermatt et al. |
20130016889 | January 17, 2013 | Myronenko et al. |
20130030571 | January 31, 2013 | Ruiz Morales et al. |
20130035583 | February 7, 2013 | Park et al. |
20130060146 | March 7, 2013 | Yang et al. |
20130060337 | March 7, 2013 | Petersheim et al. |
20130094742 | April 18, 2013 | Feilkas |
20130096574 | April 18, 2013 | Kang et al. |
20130113791 | May 9, 2013 | Isaacs et al. |
20130116706 | May 9, 2013 | Lee et al. |
20130131695 | May 23, 2013 | Scarfogliero et al. |
20130144307 | June 6, 2013 | Jeong et al. |
20130158542 | June 20, 2013 | Manzo et al. |
20130165937 | June 27, 2013 | Patwardhan |
20130178867 | July 11, 2013 | Farritor et al. |
20130178868 | July 11, 2013 | Roh |
20130178870 | July 11, 2013 | Schena |
20130204271 | August 8, 2013 | Brisson et al. |
20130211419 | August 15, 2013 | Jensen |
20130211420 | August 15, 2013 | Jensen |
20130218142 | August 22, 2013 | Tuma et al. |
20130223702 | August 29, 2013 | Holsing et al. |
20130225942 | August 29, 2013 | Holsing et al. |
20130225943 | August 29, 2013 | Holsing et al. |
20130231556 | September 5, 2013 | Holsing et al. |
20130237995 | September 12, 2013 | Lee et al. |
20130245375 | September 19, 2013 | DiMaio et al. |
20130261640 | October 3, 2013 | Kim et al. |
20130272488 | October 17, 2013 | Bailey et al. |
20130272489 | October 17, 2013 | Dickman et al. |
20130274761 | October 17, 2013 | Devengenzo et al. |
20130281821 | October 24, 2013 | Liu et al. |
20130296884 | November 7, 2013 | Taylor et al. |
20130303887 | November 14, 2013 | Holsing et al. |
20130307955 | November 21, 2013 | Deitz et al. |
20130317521 | November 28, 2013 | Choi et al. |
20130325033 | December 5, 2013 | Schena et al. |
20130325035 | December 5, 2013 | Hauck et al. |
20130331686 | December 12, 2013 | Freysinger et al. |
20130331858 | December 12, 2013 | Devengenzo et al. |
20130331861 | December 12, 2013 | Yoon |
20130342578 | December 26, 2013 | Isaacs |
20130345717 | December 26, 2013 | Markvicka et al. |
20130345718 | December 26, 2013 | Crawford et al. |
20130345757 | December 26, 2013 | Stad |
20140000098 | January 2, 2014 | Dunning |
20140001235 | January 2, 2014 | Shelton, IV |
20140012131 | January 9, 2014 | Heruth et al. |
20140031664 | January 30, 2014 | Kang et al. |
20140046128 | February 13, 2014 | Lee et al. |
20140046132 | February 13, 2014 | Hoeg et al. |
20140046340 | February 13, 2014 | Wilson et al. |
20140049629 | February 20, 2014 | Siewerdsen et al. |
20140058406 | February 27, 2014 | Tsekos |
20140066944 | March 6, 2014 | Taylor et al. |
20140073914 | March 13, 2014 | Lavallee et al. |
20140080086 | March 20, 2014 | Chen |
20140081128 | March 20, 2014 | Verard et al. |
20140088612 | March 27, 2014 | Bartol et al. |
20140094694 | April 3, 2014 | Moctezuma de la Barrera |
20140094851 | April 3, 2014 | Gordon |
20140096369 | April 10, 2014 | Matsumoto et al. |
20140100587 | April 10, 2014 | Farritor et al. |
20140121676 | May 1, 2014 | Kostrzewski et al. |
20140128882 | May 8, 2014 | Kwak et al. |
20140135796 | May 15, 2014 | Simon et al. |
20140142591 | May 22, 2014 | Alvarez et al. |
20140142592 | May 22, 2014 | Moon et al. |
20140148692 | May 29, 2014 | Hartmann et al. |
20140163581 | June 12, 2014 | Devengenzo et al. |
20140171781 | June 19, 2014 | Stiles |
20140171900 | June 19, 2014 | Stiles |
20140171965 | June 19, 2014 | Loh et al. |
20140180308 | June 26, 2014 | von Grunberg |
20140180309 | June 26, 2014 | Seeber et al. |
20140187915 | July 3, 2014 | Yaroshenko et al. |
20140188132 | July 3, 2014 | Kang |
20140194699 | July 10, 2014 | Roh et al. |
20140130810 | May 15, 2014 | Azizian et al. |
20140221819 | August 7, 2014 | Sarment |
20140222023 | August 7, 2014 | Kim et al. |
20140228631 | August 14, 2014 | Kwak et al. |
20140234804 | August 21, 2014 | Huang et al. |
20140257328 | September 11, 2014 | Kim et al. |
20140257329 | September 11, 2014 | Jang et al. |
20140257330 | September 11, 2014 | Choi et al. |
20140275760 | September 18, 2014 | Lee et al. |
20140275955 | September 18, 2014 | Crawford et al. |
20140275985 | September 18, 2014 | Walker et al. |
20140276931 | September 18, 2014 | Parihar et al. |
20140276940 | September 18, 2014 | Seo |
20140276944 | September 18, 2014 | Farritor et al. |
20140288413 | September 25, 2014 | Hwang et al. |
20140299648 | October 9, 2014 | Shelton, IV et al. |
20140303434 | October 9, 2014 | Farritor et al. |
20140303643 | October 9, 2014 | Ha et al. |
20140305995 | October 16, 2014 | Shelton, IV et al. |
20140309659 | October 16, 2014 | Roh et al. |
20140316436 | October 23, 2014 | Bar et al. |
20140323803 | October 30, 2014 | Hoffman et al. |
20140324070 | October 30, 2014 | Min et al. |
20140330288 | November 6, 2014 | Date et al. |
20140364720 | December 11, 2014 | Darrow et al. |
20140371577 | December 18, 2014 | Maillet et al. |
20140379130 | December 25, 2014 | Lee et al. |
20150039034 | February 5, 2015 | Frankel et al. |
20150085970 | March 26, 2015 | Bouhnik et al. |
20150146847 | May 28, 2015 | Liu |
20150150524 | June 4, 2015 | Yorkston et al. |
20150196261 | July 16, 2015 | Funk |
20150213633 | July 30, 2015 | Chang et al. |
20150335480 | November 26, 2015 | Alvarez et al. |
20150342647 | December 3, 2015 | Frankel et al. |
20160005194 | January 7, 2016 | Schretter et al. |
20160166329 | June 16, 2016 | Langan et al. |
20160235480 | August 18, 2016 | Scholl et al. |
20160249990 | September 1, 2016 | Glozman et al. |
20160302871 | October 20, 2016 | Gregerson et al. |
20160320322 | November 3, 2016 | Suzuki |
20160331335 | November 17, 2016 | Gregerson et al. |
20170135770 | May 18, 2017 | Scholl et al. |
20170143284 | May 25, 2017 | Sehnert et al. |
20170143426 | May 25, 2017 | Isaacs et al. |
20170156805 | June 8, 2017 | Taylor |
20170156816 | June 8, 2017 | Ibrahim |
20170202629 | July 20, 2017 | Maillet et al. |
20170212723 | July 27, 2017 | Atarot et al. |
20170215825 | August 3, 2017 | Johnson et al. |
20170215826 | August 3, 2017 | Johnson et al. |
20170215827 | August 3, 2017 | Johnson et al. |
20170231710 | August 17, 2017 | Scholl et al. |
20170258426 | September 14, 2017 | Risher-Kelly et al. |
20170273748 | September 28, 2017 | Hourtash et al. |
20170296277 | October 19, 2017 | Hourtash et al. |
20170360493 | December 21, 2017 | Zucher et al. |
0744633 | November 1996 | EP |
2286729 | February 2011 | EP |
898843 | April 1996 | JP |
8313304 | November 1996 | JP |
02071369 | September 2002 | WO |
WO 2010075292 | July 2010 | WO |
2012018816 | February 2012 | WO |
- US 8,231,638 B2, 07/2012, Swarup et al. (withdrawn)
- Edward Rarnsden, Hall Effect Sensors; Theory and Application (2nd Edition), pp. 107-130, http://store.elsevier.com/Hall-Effect-Sensors/Edward-Ramsden/isbn-9780080523743/. Feb. 28, 2006.
- Shuanghui, Hao et al., Study on a novel absolute magnetic encoder, Robotice and Biomemetics, 2009, Robio, 2009. IEEE, International Conference on IEEE. pp. 1773-1776, Feb. 22, 2009.
- Eric M. Yeatmann et al., “Use of Scanned Detection in Optical Position Encoders”, IEEE, Transactions of Instrumentation and Measurement. vol. 53, No. 1, pp. 37-44. http://www3.imperial.ac.uk/pls/portallive/docs/1/375913.PDF. Feb. 28, 2004.
- Nevro Corp. v. Boston Scientific Corp. et al, U.S. Dist. Court ND California, Complaint for Patent Infringement and Declaratory Judgement, Case No. 16-cv-6830, 10 pages.
- State of the Art Search for Imaging Devices Used in Conjunction With Surgical Navigation Software for Registering Image Data, performed by Shane Davis of Optimized Intellectual Property Solutions, Nov. 5, 2014, 2 pages.
- Search Report for: Automatic Planning of Surgical Screw Position During a Robot Assisted Surgical Procedure by John Johnson, dated Jan. 18, 2018 (GM801), 2 pages.
- Search Report for: Breathing Meter for Robotic Assisted Surgery by John Johnson, dated Jan. 22, 2018 (GM802), 3 pages.
- Search Report for: Instrument Verification Improvement by John Johnson, dated May 22, 2018 (GM813), 2 pages.
- Search Report for: Hammerhead Probe by John Johnson, dated Jul. 3, 2018 (GM816), 2 pages.
- Search Report for: Navigation of a Bent Rod by John Johnson, dated Jul. 6, 2018 (GM817), 2 pages.
- Search Report for: Large Field of View Cone Beam CT by John Johnson, dated Jul. 12, 2018 (GM818), 2 pages.
- Search Report for: Robot Collision Detection by John Johnson, dated Aug. 3, 2018 (GM819), 4 pages.
- Search Report for: Implant Trajectory and Tool Planning via Navigated Instrument by John Johnson, dated Aug. 9, 2018 (GM820), 3 pages.
- Search Report for: Improved Low-Contrast CBCT Imaging by John Johnson, dated Aug. 6, 2018 (GM821), 3 pages.
- Allowed Claims, showing Amendments to the claims for U.S. Patent Application Publication No. 2009/0185655, 7 pages.
- Allowed Claims, showing Amendments to the claims for U.S. Patent Application Publication No. 2016/0005194, 4 pages.
- Patent Search for CBCT-fluoroscopy-radiography, Mar. 2, 2018.
Type: Grant
Filed: Oct 24, 2013
Date of Patent: Jul 23, 2019
Patent Publication Number: 20140275955
Assignee: Globus Medical, Inc. (Audubon, PA)
Inventors: Neil R. Crawford (Tempe, AZ), Nicholas Theodore (Phoenix, AZ), Mitchell A Foster (Phoenix, AZ)
Primary Examiner: Tse W Chen
Assistant Examiner: Joanne M Hoffman
Application Number: 14/062,707
International Classification: A61B 5/00 (20060101); A61B 5/06 (20060101); A61B 90/96 (20160101); A61B 34/30 (20160101); A61B 90/98 (20160101); A61B 17/00 (20060101); A61B 17/17 (20060101); A61B 34/20 (20160101); A61B 90/00 (20160101); A61B 90/11 (20160101);